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Updated: Aug 15, 2025

Efficient Generation of Pancreas/Duodenum Homeobox Protein 1+ Posterior Foregut/Pancreatic Progenitors from hPSCs in Adhesion Cultures
Published on: March 27, 2019
PDX1 is the cornerstone of pancreatic β-cell functions and identity
Nour Ebrahim1,2, Ksenia Shakirova1, Erdem Dashinimaev1,2
1Center for Precision Genome Editing and Genetic Technologies for Biomedicine, Pirogov Russian National Research Medical University, Moscow, Russia.
Abstract:
Diabetes has been a worldwide healthcare problem for many years. Current methods of treating diabetes are still largely directed at symptoms, aiming to control the manifestations of the pathology. This creates an overall need to find alternative measures that can impact on the causes of the disease, reverse diabetes, or make it more manageable. Understanding the role of key players in the pathogenesis of diabetes and the related β-cell functions is of great importance in combating diabetes. PDX1 is a master regulator in pancreas organogenesis, the maturation and identity preservation of β-cells, and of their role in normal insulin function. Mutations in the PDX1 gene are correlated with many pancreatic dysfunctions, including pancreatic agenesis (homozygous mutation) and MODY4 (heterozygous mutation), while in other types of diabetes, PDX1 expression is reduced. Therefore, alternative approaches to treat diabetes largely depend on knowledge of PDX1 regulation, its interaction with other transcription factors, and its role in obtaining β-cells through differentiation and transdifferentiation protocols. In this article, we review the basic functions of PDX1 and its regulation by genetic and epigenetic factors. Lastly, we summarize different variations of the differentiation protocols used to obtain β-cells from alternative cell sources, using PDX1 alone or in combination with various transcription factors and modified culture conditions. This review shows the unique position of PDX1 as a potential target in the genetic and cellular treatment of diabetes.
Insights
Understanding pancreatic and duodenal homeobox 1 (PDX1) is crucial for diabetes treatment. Research highlights PDX1
Area of Science:
- Endocrinology and Metabolism
- Developmental Biology
- Genetics
Background:
- Diabetes mellitus is a global health challenge with current treatments focusing on symptom management.
- There is a critical need for alternative strategies targeting the root causes of diabetes.
- Pancreatic and duodenal homeobox 1 (PDX1) is vital for beta-cell function and insulin regulation.
Purpose of the Study:
- To review the fundamental roles of PDX1 in pancreatic development and beta-cell function.
- To explore the genetic and epigenetic regulation of PDX1.
- To summarize strategies for generating beta-cells using PDX1 for diabetes treatment.
Main Methods:
- Literature review of PDX1 functions, regulation, and role in beta-cell differentiation.
- Analysis of genetic and epigenetic factors influencing PDX1 expression.
- Summary of differentiation and transdifferentiation protocols utilizing PDX1.
Main Results:
- PDX1 is a master regulator of pancreas development and beta-cell identity.
- Mutations or reduced expression of PDX1 are linked to pancreatic dysfunction and diabetes.
- PDX1 is a key factor in generating functional beta-cells from alternative sources.
Conclusions:
- PDX1 plays a central role in beta-cell biology and diabetes pathogenesis.
- Targeting PDX1 offers a promising avenue for novel diabetes therapies.
- Further research into PDX1 regulation and its use in cell differentiation holds therapeutic potential.
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